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飞秒激光制造的微流体通道中的直接三维流体动力聚焦

Straightforward 3D hydrodynamic focusing in femtosecond laser fabricated microfluidic channels.

作者信息

Paiè Petra, Bragheri Francesca, Vazquez Rebeca Martinez, Osellame Roberto

机构信息

Dipartimento di Fisica, Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.

出版信息

Lab Chip. 2014 Jun 7;14(11):1826-33. doi: 10.1039/c4lc00133h. Epub 2014 Apr 17.

Abstract

We report on the use of femtosecond laser irradiation followed by chemical etching as a microfabrication tool for innovative microfluidic networks that implement hydrodynamic focusing. The capability of our microfabrication technology to interconnect microchannels in three dimensions was exploited to demonstrate 2D hydrodynamic focusing, either in the horizontal or in the vertical plane, and full 3D hydrodynamic focusing. In all cases only two inlets were required, one for the sample and one for the sheath flows. Fluidic characterization of all devices was provided. In addition, taking advantage of the possibility to write optical waveguides using the same technology, a monolithic cell counter based on 3D hydrodynamic focusing and integrated optical detection was validated. Counting rates up to 5000 cells s(-1) were achieved in this very compact device, where focusing and counting operations were implemented in less than 1 mm(3). Integration of this hydrodynamic focusing module into several devices fabricated by the same technology as optical cell stretchers and cell sorters is envisaged.

摘要

我们报道了使用飞秒激光照射后进行化学蚀刻作为一种微加工工具,用于制造实现流体动力聚焦的创新微流控网络。利用我们的微加工技术在三维空间中互连微通道的能力,展示了二维流体动力聚焦,无论是在水平平面还是垂直平面,以及全三维流体动力聚焦。在所有情况下,仅需要两个入口,一个用于样品,一个用于鞘流。提供了所有器件的流体特性。此外,利用使用相同技术写入光波导的可能性,验证了一种基于三维流体动力聚焦和集成光学检测的单片细胞计数器。在这种非常紧凑的器件中实现了高达5000个细胞每秒的计数率,其中聚焦和计数操作在小于1立方毫米的空间内完成。设想将这种流体动力聚焦模块集成到由与光学细胞拉伸器和细胞分选器相同技术制造的几种器件中。

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